Energy storage system, method for initially charging of power storage bank
By using the storage bank's energy to start the power conversion unit and connect to the grid for initial charging, the need for a dedicated charging circuit is eliminated, simplifying the system and ensuring stable operation and safety in energy storage systems.
Patent Information
- Application Number
- JP2024053554
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-03-28
- Publication Date
- 2025-10-09
AI Technical Summary
The installation of a dedicated charging circuit for initial charging in energy storage systems is costly, and there is a need for a more economical method to charge power storage banks without such circuits.
The energy storage system uses the energy of the storage bank before initial charging to start up the power conversion unit and then connects to the power grid for initial charging, eliminating the need for a dedicated charging circuit.
This approach simplifies the system configuration, reduces costs, and ensures stable operation by allowing initial charging without a dedicated charging circuit, facilitating smooth setup and reducing the risk of safety issues during storage and transportation.
Smart Images

Figure 2025151920000001_ABST
Abstract
Description
[Technical Field]
[0001] The present invention relates to a technique for initially charging a storage bank in an energy storage system connected to a power grid. [Background technology]
[0002] The introduction of energy storage systems is being promoted to achieve efficient energy management. When the demand for electricity is lower than the supply, the energy storage system charges a storage bank with surplus electricity, and when the demand for electricity exceeds the supply, the system discharges the storage bank to make up for the power shortage. Patent Document 1 is a document disclosing technology related to energy storage systems. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Publication No. 2023-65595 Summary of the Invention [Problem to be solved by the invention]
[0004] In order to initially charge the power storage bank 120 when the energy storage system is started up, it is possible to provide the energy storage system with a charging circuit (DC power supply circuit) 200 dedicated to initial charging, as shown in Fig. 10. In Fig. 10, 140 denotes a power conversion unit, and 150 denotes a control device.
[0005] However, installing a charging circuit (DC power supply circuit) 200 dedicated to initial charging is costly, and improvements have been sought. An object of the present invention is to initially charge a power storage bank without using a charging circuit dedicated to initial charging. [Means for solving the problem]
[0006] An energy storage system according to one embodiment of the present invention is an energy storage system that is connected to a power grid and includes at least one or more power storage banks, at least one or more power conversion units, and a control device.
[0007] When starting up the energy storage system, the control device starts up the power conversion unit using the storage bank before initial charging as a power source, then connects to the power grid, and after connecting to the power grid, uses the power conversion unit to initially charge the storage bank with power from the power grid. [Effects of the Invention]
[0008] This technology allows for initial charging of a storage bank without using a dedicated charging circuit for initial charging. [Brief explanation of the drawings]
[0009] [Figure 1] Perspective view of an energy storage system [Figure 2] Energy storage system block diagram [Figure 3A] Power conversion unit block diagram [Figure 3B] Power conversion unit block diagram [Figure 4] Initial charging operation flowchart [Figure 5] Diagram showing the initial charging path of the storage bank [Figure 6] Initial charging operation flowchart [Figure 7] Diagram showing the initial charging path of the storage bank [Figure 8] Flowchart of adding a power conversion unit [Figure 9] Energy storage system block diagram [Figure 10] FIG. 1 shows a comparative example DETAILED DESCRIPTION OF THE INVENTION
[0010] (Outline of this embodiment) (1) An energy storage system according to one embodiment of the present invention is an energy storage system connected to a power grid, and includes at least one or more power storage banks, at least one or more power conversion units, and a control device.
[0011] When the energy storage system is started up, the control device starts up the power conversion unit using the storage bank before initial charging as a power source, then connects to the power grid, and after connecting to the power grid, initially charges the storage bank with power from the power grid using the power conversion unit. The initial charging is charging performed on the storage bank when the energy storage system is started up. In the energy storage system of (1), configurations other than those described above are optional and any configuration may be used.
[0012] According to the energy storage system (1), the energy (capacity) of the storage bank before initial charging is used to start the power conversion unit, and the storage bank is initially charged using power from the power grid. This eliminates the need for a dedicated charging circuit for initial charging, simplifying the configuration of the energy storage system. By widely utilizing this technology not only at the initial startup of the energy storage system, but also at startup after maintenance or after an abnormal shutdown, it becomes possible to ensure the capacity of the storage battery panel after system startup. This is expected to contribute to the stable operation of the energy storage system.
[0013] In recent years, the introduction of energy storage systems has progressed in order to achieve carbon neutrality. This requires a large number of storage cells, and the production volume of these cells is on the rise. Against this backdrop, mass-produced inventory is shipped to various locations across the country, and construction schedules are adjusted at each location, resulting in longer storage periods for storage cells. If storage periods are prolonged, the SOC of the storage cells will decrease due to self-discharge, making initial charging necessary when setting up on-site after construction is completed. By applying this technology, initial charging can be performed without installing a dedicated charging circuit, facilitating smooth system set-up at the site. This will contribute to efforts to achieve carbon neutrality.
[0014] (2) In the energy storage system described in (1) above, the control device may determine, at the time of startup of the energy storage system, whether the power conversion unit can be started with the energy that can be output from the power storage bank before initial charging, and if startup is possible, start the power conversion unit using the power storage bank before initial charging as a power source. In the energy storage system of (2), any configuration other than the above is optional and may be used.
[0015] According to the energy storage system (2), if the output energy of the storage bank before initial charging is sufficient to start the power conversion unit, that energy is used to start the power conversion unit, thereby making it possible to effectively utilize the energy of the storage bank before initial charging.
[0016] (3) In the energy storage system described in (1) or (2) above, the power conversion unit may be a plurality of units, and the control device may adjust the number of power conversion units to be activated depending on the state of the power storage bank before initial charging. In the energy storage system of (3), any configuration other than the above is optional and may be any configuration.
[0017] According to the configuration (3), the number of power conversion units to be activated can be adjusted depending on the state of the storage bank before the initial charge, thereby enabling flexible operation of the energy storage system.
[0018] (4) In the energy storage system described in (3) above, when the energy that can be output from the power storage bank before initial charging is insufficient for the energy required to start up the plurality of power conversion units, the control device may start up some of the power conversion units and start initial charging of the power storage bank. In the energy storage system of (4), any configuration other than the above is optional and may be any configuration.
[0019] According to the configuration (4), even if the energy of the storage bank before the initial charge is insufficient, the initial charge of the storage bank can be started by activating some of the power conversion units. Furthermore, in a single power conversion unit configuration, if the energy of the storage bank before the initial charge is insufficient to start the power conversion unit, it is expected that the power conversion unit cannot be activated and the initial charge of the storage bank cannot be started. However, in a multiple power conversion unit configuration, assuming the overall capacity is the same, the capacity required to start each unit is smaller than in a single unit configuration. For example, in a two-unit configuration, the capacity required to start each unit is only half of the total. Therefore, by using multiple power conversion units and applying this technology, it is expected that the risk of difficulty in starting the initial charge of the storage bank can be reduced and initial charge can be made possible regardless of the state of the storage bank (storage cells).
[0020] (5) In the energy storage system described in (4) above, when the energy shortage in the power storage bank is resolved by starting the initial charging, the control device may start up the remaining power conversion units and increase the number of power conversion units used for the initial charging. In the energy storage system of (5), any configuration other than the above is optional and may be any configuration.
[0021] According to the configuration (5), by increasing the number of power conversion units used for the initial charging, the time required for the initial charging can be shortened.
[0022] (6) In the energy storage system according to any one of (1) to (5) above, the storage bank may be initially charged when the energy storage system is first started up. In the energy storage system according to (6), any configuration other than the above is optional and may be any configuration.
[0023] According to the configuration (6), when the energy storage system is first started up, the capacity of the storage bank can be restored by initial charging, thereby eliminating capacity shortages. Conversely, before the energy storage system is first started up, such as during storage in a factory, the capacity of the storage bank can be reduced, which prevents cell deterioration and allows storage and transportation at low capacity, which is advantageous in terms of safety and management. If the storage bank uses cells that are prone to chemical reactions, such as lithium-ion secondary batteries, storage and transportation can pose safety issues even at high SOC. By applying this technology, storage and transportation at low SOC is possible before installation, eliminating or minimizing safety issues specific to cells. In addition to the above, capacity decline due to natural discharge can also be tolerated.
[0024] <Embodiment 1> 1. Description of Energy Storage System 10 FIG. 1 is a perspective view of an energy storage system 10. The energy storage system 10 is a system that is connected to a power grid 1 and adjusts the supply and demand of electricity. The power grid 1 may be that of an electric power company, or it may be an independent power grid that is made up of the stand-alone operation output of a large power conditioner.
[0025] 2 is a block diagram of the energy storage system 10. In this embodiment, three energy storage systems 10A to 10C are installed in parallel. Since the energy storage systems 10A to 10C have the same structure, the configuration of the energy storage system 10A will be described as a representative.
[0026] The energy storage system 10A includes a battery panel 20A and a PCS panel 30A. PCS stands for Power Conditioning System.
[0027] The battery panel 20A includes a power storage bank 21, a monitoring unit 23, and a housing 25 that houses these. The power storage bank 21 is composed of a plurality of power storage cells connected in series. Various types of cells can be used as the power storage cells as long as they are capable of storing electricity (capable of repeated charging and discharging), such as non-aqueous electrolyte secondary battery cells such as lithium ion secondary batteries, capacitors, NAS battery cells, and redox flow battery cells. The power storage bank 21 may be configured as one bank or multiple banks. In this embodiment, it is configured as two banks.
[0028] The monitoring unit 23 monitors the state of the battery panel 20A. Items monitored include the voltage (total voltage of the power storage banks 21, voltage of each power storage cell), current (total current of the power storage banks 21), temperature, etc. of the battery panel 20A. These monitored items can be measured by sensors.
[0029] The storage battery panel 20A is connected via a switch SW to the PCS panel 30. In this embodiment, a plurality of (three) storage battery panels 20A are connected in parallel to one PCS panel 30A.
[0030] The PCS panel 30A includes a power conversion unit 40A, a switch SW, a control device 50A, and a housing 60 that accommodates these components. The power conversion unit 40A is connected to an interconnection line L1 of the power system 1 via the switch SW.
[0031] As shown in FIG. 3A, the power conversion unit 40A includes a DC / DC converter 41, a link capacitor 42, an inverter 43, a current sensor 44, an LC filter 45, and a switch 46.
[0032] The power conversion unit 40A is a bidirectional power converter capable of reverse conversion (DC to AC) and forward conversion (AC to DC).
[0033] 3A, the power conversion unit 40A performs an inverse conversion operation (DC to AC) to discharge the battery panel 20A and supply AC power to the power grid 1. Also, the power conversion unit 40A performs a forward conversion operation (AC to DC) to charge the battery panel 20A with AC power from the power grid 1, as shown in FIG. 3B.
[0034] In this embodiment, a plurality of power conversion units 40A are provided in parallel to ensure the capacity of the PCS board 30A.
[0035] The control device 50A includes, for example, a CPU (Central Processing Unit) and a memory for storing various data. The control device 50A controls the power conversion unit 40A in response to commands from a higher-level device 100 such as an EMS (Energy Management System) and adjusts the supply and demand of power.
[0036] Specifically, when the demand for electricity is lower than the supply, the excess electricity is used to charge the battery panel 20A of the energy storage system 10A, and when the demand for electricity exceeds the supply, the power shortage is compensated for by discharging the battery panel 20A of the energy storage system 10A.
[0037] As described above, the energy storage system 10A can improve the efficiency of energy use and contribute to energy conservation by exchanging power with the power grid 1 and adjusting supply and demand.
[0038] As shown in FIGS. 1 and 2, this system includes three energy storage systems 10A to 10C, and control devices 50A to 50C of the energy storage systems 10A to 10C are connected by a communication line L2.
[0039] The three control devices 50A to 50C cooperate through mutual communication to control the entire energy storage systems 10A to 10C. By adjusting the supply and demand of electricity using the three parallel energy storage systems 10A to 10C, it is possible to adjust three times the amount of energy compared to a single system.
[0040] The control system is not limited to the above, and an integrated control device that integrates the three control devices 50A to 50C may be installed separately. The entire energy storage system 10A to 10C may be controlled via the three control devices 50A to 50C by commands from the integrated control device.
[0041] The control devices 50A to 50C store data (A) to (D) in memory 51, respectively, in order to initially charge the storage battery panels 20A to 20C. The initial charging is charging that is performed when the energy storage system is started up. The initial charging is not limited to the first start-up after the product is installed, but also includes cases where the storage battery panel 20 is charged when the system is started up after operation has been stopped due to maintenance or a malfunction, or when the system is started up after the storage battery panel 20, etc. has been replaced.
[0042] (A) SOC or capacity of the battery panel before initial charging (B) Voltage of the battery panel (storage cell) before initial charging (C) Lower limit voltage of storage board (storage cell) (D) Energy required to start the power conversion unit (power consumption)
[0043] The data (A) may be a measurement value by the monitoring unit 23 or the like, or may be substituted with data at the time of shipment from the factory (during supplementary charging). If a long period of time has passed since shipment from the factory, a decrease in capacity due to self-discharge may be taken into account.
[0044] 2. Initial charging of the battery panel 20 The battery panels 20A to 20C may be supplementally charged before shipping. Supplementary charging is a small amount of charging that prevents the dischargeable capacity from becoming zero, in order to suppress deterioration of the storage cells. Since the amount of energy supplementary charging is not sufficient to adjust the supply and demand of electricity, the battery panels 20A to 20C may be initially charged when the energy storage systems 10A to 10C are started up.
[0045] 4 is a flowchart of the initial charging operation of the battery panels 20A to 20C. The initial charging operation will be described below using the battery panel 20A as an example.
[0046] The initial charging operation of the battery panel 20A is composed of five steps S10 to S50.
[0047] When the initial charging operation starts, the control device 50A first determines in S10 whether the amount of energy that can be output from the storage battery panel 20A before the initial charging is sufficient to start up the power conversion unit 40A. Specifically, when the three power conversion units 40A-1 to 40A-3 are started up using the storage battery panel 20A before the initial charging as a power source, the determination can be made based on whether the storage battery panel 20A can maintain a lower limit voltage that is necessary to maintain performance.
[0048] An example of the startup process of the power conversion unit 40A is charging of the components of the power conversion unit 40A, specifically the link capacitor 42 and the LC filter 45.
[0049] <Calculation example> For one 200kWh battery panel, the amount of energy U1 that can be discharged from the voltage before initial charging to the lower limit voltage U1=200kWh×(ΔSOC=0.51%)=1.020Wh The power consumption U2 when the power required for the start-up operation of one power conversion unit (charging the link capacitor 42 and LC filter 45) is 1 kW and the operation time required for start-up is 1 minute U2=1kW×1 unit×1 minute=16.6Wh
[0050] For example, as shown in Figure 2, when three power conversion units 40A-1 to 40A-3 are started up using three battery panels 20A, U1 x 3 > U2 x 3, so it is possible to start up the three power conversion units 40A using the three battery panels 20A.
[0051] If the power conversion unit 40A can be started by the storage battery panel 20A (S10: YES), the process proceeds to S20.
[0052] When the process proceeds to S20, the control device 50A uses the storage battery panel 20A as a power source to charge the link capacitor 42 and the LC filter 45, thereby starting up each of the three power conversion units 40A-1 to 40A-3 on the PCS panel 30A.
[0053] Thereafter, the control device 50A sends a command to the PCS panel 30A to control each power conversion unit 40A to AC output (reverse conversion operation: discharge in FIG. 3A ) and closes the switch 65. By setting the power conversion unit 40A to the AC output state, the output of the power conversion unit 40A can be controlled so that the voltage difference and phase difference with the power grid 1 are small. Therefore, connection to the power grid 1 is possible with a small voltage difference and phase difference.
[0054] Next, in S30, the control device 50A closes the switch SW and connects the started-up power conversion unit 40A to the power system 1.
[0055] Thereafter, in S40, the control device 50A sends a command to the PCS panel 30A to switch the power conversion unit 40A to DC output (forward conversion operation in FIG. 3B; charging).
[0056] As a result, as shown in FIG. 5, three power conversion units 40A-1 to 40A-3 of PCS panel 30A can be used to initially charge three storage battery panels 20A with power from power system 1.
[0057] The storage battery panels 20B and 20C can also be initially charged in a similar manner. After the initial charging of the storage battery panels 20A to 20C is completed, the energy storage system 10 starts operation.
[0058] On the other hand, if it is determined in S10 that the amount of energy in the battery panel 20A is insufficient, the control device 50A issues a warning of a charging error. When a warning of a charging error is issued, it is conceivable to start up the power conversion unit 20A using a separate power source and initially charge the battery panel 20A with power from the power system 1. The separate power source may be, for example, an external portable power source or a built-in auxiliary power source. Furthermore, the battery panel 20A may be charged by some other method or route, not limited to the power system 1.
[0059] 2.Effects According to the energy storage system 10, the energy (capacity) of the storage battery panel 20 before the initial charge is used to start up the power conversion unit 40, and the storage battery panel 20 is initially charged with power from the power system 1. Therefore, there is no need to provide a charging circuit dedicated to the initial charge, and the configuration of the energy storage system 10 can be simplified.
[0060] <Embodiment 2> Fig. 6 is a flowchart of the initial charging operation of battery panels 20A to 20C. The initial charging operation of Fig. 6 differs from the initial charging operation of Fig. 4 in that S25 is added. The differences from the initial charging operation of Fig. 4 will be described below.
[0061] When the initial charging operation starts, the control device 50A first determines in S10 the amount of energy that can be output from the storage battery panel 20A in the state before the initial charging.
[0062] If the three power conversion units 40A-1 to 40A-3 can be started with the amount of energy that can be output from the battery panel 20A (S10: YES), as in embodiment 1, the control device 50A starts up the three power conversion units 40A-1 to 40A-3 using the battery panel 20A as a power source.
[0063] Thereafter, the control device 50A connects the three power conversion units 40A-1 to 40A-3 that have been started to the power system 1, and initially charges the storage battery panel 20A with power from the power system 1 using the three power conversion units 40A-1 to 40A-3 that have been started (S20 to S40).
[0064] If the amount of energy that can be output by the storage battery panel 20A is insufficient to start up the three power conversion units 40A-1 to 40A-3 (S10: NO), the process proceeds to S25.
[0065] When the process proceeds to S25, the control device 50A starts up some of the three power conversion units 40A-1 to 40A-3. For example, if two power conversion units can be started up within the output range of the storage battery panel 20A, two power conversion units 40A-1 and 40A-2 are started up among the three units 40A-1 to 40A-3.
[0066] Thereafter, the control device 50A connects the two power conversion units 40A-1 and 40A-2 that have started up to the power grid 1.
[0067] Thereafter, by switching the power conversion unit 40A to charging, the battery panel 20A can be initially charged using the two power conversion units 40A-1 and 40A-2, as shown in FIG. 7 (S20 to S40).
[0068] According to this configuration, even if the amount of energy that can be output from the battery panel 20A is insufficient before the initial charging, the initial charging of the battery panel 20A can be started by activating some of the power conversion units 40A-1, 40A-2.
[0069] 8 is a flowchart of additional processing of the power conversion unit 40A that is executed during initial charging. After the start of initial charging, the SOC of the storage battery panel 20A increases due to charging, and the amount of energy that can be output increases.
[0070] After the start of initial charging, the control device 50A determines whether the shortage of energy in the storage battery panel 20A has been resolved (S100). Specifically, the control device 50A determines whether the amount of energy that can be output is sufficient to start up the third power conversion unit 40A-3.
[0071] If the amount of energy is sufficient (S100: YES), the control device 50A temporarily stops the initial charging, starts the power conversion unit 40A-3 using the energy from the storage battery panel 20A, and increases the number of power conversion units 40A used for charging from two to three (S110, S120).
[0072] Then, after starting up the third unit, initial charging is resumed, and after resumption, three power conversion units 40A-1 to 40A-3 are used to initially charge battery panel 20A with power from power system 1 (S130).
[0073] According to this configuration, by increasing the number of power conversion units used for initial charging, the time required for initial charging can be shortened.
[0074] <Other embodiments> The present invention is not limited to the embodiments described above and illustrated in the drawings, and the following embodiments, for example, are also included within the technical scope of the present invention.
[0075] (1) In the above embodiment, a configuration in which three energy storage systems 10A to 10C are installed side by side is shown as in Figures 1 and 2. However, the present technology is not limited to this, and can be applied to a single energy storage system 10A as shown in Figure 9. Furthermore, the number of storage battery panels 20A and PCS panels 30A may be one.
[0076] (2) In the above embodiment, the battery panel 20 is initially charged when the energy storage system 10 is started up for the first time. This technology may be applied to initially charge the battery panel 20 not only at the initial start-up but also when the system is started up after operation has been stopped due to maintenance or an abnormality, or when the system is started up after the battery panel 20 or the like has been replaced. In addition, the technology may be applied to initially charge the battery panel 20 when the system is started up after a new battery panel 20 or PCS panel 30 has been added, or when the battery panel 20 has discharged below the lower limit voltage (limit) due to operation.
[0077] (3) In the above embodiment, charging of the link capacitor 42 and the LC filter 45 was described as one of the processes for starting up the power conversion unit 40. The start-up process is not limited to charging of the link capacitor 42 and the LC filter 45, and may be any other process that consumes power.
[0078] (4) In the above embodiment, in the flow of the initial charging operation shown in Fig. 4, it is determined in S10 whether the amount of energy in the battery panel 20A before the initial charging is sufficient to start up the power conversion unit 40A. If the energy (capacity) of the battery panel 20A before the initial charging is managed so that it is not insufficient to start up the power conversion unit 40A, S10 may be omitted.
[0079] (5) In the above embodiment, the number of power conversion units 40 to be activated is adjusted according to the amount of energy that can be output from the storage battery panel 20A. If the storage battery panel 20A is deteriorated before the initial charge due to long-term storage or the like, the number of power conversion units 40 to be activated may be adjusted according to the degree of deterioration. Specifically, the number of power conversion units 40 to be activated may be reduced as the deterioration progresses. The degree of deterioration can be estimated, for example, from the storage period of the storage cells and the environmental conditions during storage. These data on the storage cells during storage (storage period and environmental conditions) are an example of data for identifying the state of the storage cells before the initial charge. The data may be associated with the storage cells, managed, and stored in advance in the control device 50. Alternatively, the data may be acquired by data communication with the storage facility. In this way, adjusting the number of power conversion units to be activated according to the state of the storage battery panel 20A before the initial charge, such as the amount of energy that can be output and the degree of deterioration, enables flexible operation and allows initial charging to be performed regardless of the state of the storage battery panel before the initial charge.
[0080] 1 Power system 10A~10C Energy Storage System 20A~20C storage battery board 30A~30C PCS board 40A~40C Power Conversion Unit 50A~50C control device
Claims
1. An energy storage system connected to an electric power grid, At least one storage bank; at least one power conversion unit; a control device; the control device, when starting up the energy storage system, starts up the power conversion unit using the power storage bank before initial charging as a power source, and then connects the power conversion unit to a power grid; After being connected to a power grid, the energy storage system uses the power conversion unit to initially charge the storage bank with power from the power grid.
2. 10. The energy storage system of claim 1, The control device determines whether the power conversion unit can be started with the outputtable energy of the power storage bank before initial charging at the time of starting up the energy storage system; When start-up is possible, the energy storage system starts up the power conversion unit using the storage bank before initial charging as a power source.
3. 3. The energy storage system according to claim 1 or claim 2, the power conversion unit is a plurality of units, The control device adjusts the number of power conversion units to be activated depending on the state of the storage bank before initial charging.
4. 4. The energy storage system of claim 3, The control device, when the output energy of the storage bank before initial charging is insufficient for the energy required to start up a plurality of power conversion units, starts up some of the power conversion units and begins initial charging of the storage bank.
5. 5. The energy storage system of claim 4, When the energy shortage in the storage bank is resolved by the initial charging, the control device activates the remaining power conversion units and increases the number of power conversion units used for the initial charging.
6. 3. The energy storage system according to claim 1 or claim 2, An energy storage system, wherein the storage bank is initially charged when the energy storage system is first started up.
7. 1. A method for charging a storage bank of an energy storage system connected to a power grid, comprising: When starting up the energy storage system, the power conversion unit is started up using the storage bank before initial charging as a power source, and then the system is connected to the power grid; and an energy storage system for a power storage bank, which, after being connected to a power grid, initially charges the power storage bank with power from the power grid using the power conversion unit.
Citation Information
Patent Citations
Power supply system including DC / DC converter and control method thereof
JP2023065595A